Departamento de Física y Química Teórica, Facultad de Química, Universidad Nacional Autónoma de México, Mexico City C.P. 04510, Mexico.
Donostia International Physics Center (DIPC), 20018 Donostia, Euskadi, Spain; Euskal Herriko Unibertsitatea (UPV/EHU), PK 1072, 20080 Donostia, Euskadi, Spain; and Basque Foundation for Science (IKERBASQUE), 48009 Bilbao, Euskadi, Spain.
J Chem Phys. 2023 Feb 28;158(8):084110. doi: 10.1063/5.0137378.
This work assesses the performance of the recently proposed global natural orbital functional (GNOF) against the charge delocalization error. GNOF provides a good balance between static and dynamic electronic correlations leading to accurate total energies while preserving spin, even for systems with a highly multi-configurational character. Several analyses were applied to the functional, namely, (i) how the charge is distributed in super-systems of two fragments, (ii) the stability of ionization potentials while increasing the system size, and (iii) potential energy curves of a neutral and charged diatomic system. GNOF was found to practically eliminate the charge delocalization error in many of the studied systems or greatly improve the results obtained previously with PNOF7.
这项工作评估了最近提出的全局自然轨道泛函(GNOF)在电荷离域误差方面的性能。GNOF 在提供准确总能量的同时,很好地平衡了静态和动态电子相关,同时保持了自旋,即使对于具有高度多组态特征的系统也是如此。对该泛函进行了几种分析,即:(i)两个片段的超系统中电荷是如何分布的,(ii)随着系统尺寸的增加,电离势的稳定性,以及(iii)中性和带电双原子系统的势能曲线。结果发现,GNOF 在许多研究的系统中实际上消除了电荷离域误差,或者大大改善了之前用 PNOF7 得到的结果。